• DocumentCode
    2480396
  • Title

    P4L-3 Anisotropic Wave-Surface Shaped Annular Interdigital Transducer

  • Author

    Laude, Vincent ; Gérard, Davy ; Khelfaoui, Naima ; Jerez-Hanckes, Carlos F. ; Benchabane, Sarah ; Moubchir, Hanane ; Khelif, Abdelkrim

  • Author_Institution
    Inst. FEMTO-ST, Besancon
  • fYear
    2007
  • fDate
    28-31 Oct. 2007
  • Firstpage
    2115
  • Lastpage
    2118
  • Abstract
    Interdigital transducers (IDT) are widely used to generate surface acoustic waves directly on piezoelectric materials. However, in most applications, the generating fingers are straight, giving rise to the emission of plane waves. One notable exception is the circular IDT proposed by Day and Koerber for isotropic substrates [IEEE Trans. Sonics and Ultrason. SU-18, 461 (1972)]. More recently, the focused interdigital transducer (FIDT) has been used to obtain high intensity generation at the focal spot. The FIDT uses surface wave emission inside a circular arc for concentrating acoustic energy at its focus. However, the anisotropy of the substrate can lead to aberrations at the focal point. We investigate the problem of constructing an extended source that will focus elastic energy to a single point on the surface of a piezoelectric crystal. On the surface of a piezoelectric solid that is mechanically excited at a single point, concentric waves originate and form in the far field a ripple pattern that follows the shape of the wave surface, obtained by plotting the group velocity as a function of the emission angle. We conversely propose the concept of an annular interdigital transducer (AIDT), in which the shape of the fingers follows the wave surface. The surface acoustic waves generated by an AIDT are expected to converge to the center of the transducer, producing a spot that is limited in resolution by diffraction only. Experiments have been conducted on Y and Z cut lithium niobate (LiNbO3). AIDTs operating at a resonance frequency of 75 MHz have been constructed. Electrical measurements show that despite anisotropy in-phase emission at all angles is obtained for Rayleigh waves. In addition, spatial maps of the displacements at the surface have been obtained using a heterodyne optical probe, showing an important focusing of surface acoustic waves in the center of the device. The measured displacement fields at resonance show surface ripples converging to- a spot at the center of the transducer. This result is promising for several applications including intense microacoustic sources.
  • Keywords
    acoustic focusing; interdigital transducers; lithium compounds; piezoelectric materials; surface acoustic wave transducers; LiNbO3; Rayleigh waves; anisotropic wave-surface shaped transducer; annular interdigital transducer; concentric waves; elastic energy; electrical measurements; frequency 75 MHz; group velocity; heterodyne optical probe; intense microacoustic sources; lithium niobate; piezoelectric crystal; piezoelectric materials; surface acoustic waves; surface ripples; Acoustic transducers; Acoustic waves; Anisotropic magnetoresistance; Fingers; Optical surface waves; Piezoelectric transducers; Resonance; Shape; Surface acoustic wave devices; Surface acoustic waves;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Ultrasonics Symposium, 2007. IEEE
  • Conference_Location
    New York, NY
  • ISSN
    1051-0117
  • Print_ISBN
    978-1-4244-1384-3
  • Electronic_ISBN
    1051-0117
  • Type

    conf

  • DOI
    10.1109/ULTSYM.2007.532
  • Filename
    4410105